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학술논문

피톤치드(모노테르펜) 농도 예측을 위한 회귀분석 기반 모델식

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영문명
Regression Analysis-based Model Equation Predicting the Concentration of Phytoncide (Monoterpenes): Focusing on Suri Hill in Chuncheon
발행기관
한국환경보건학회
저자명
이석종(Seog-Jong Lee) 김병욱(Byoung-Ug Kim) 홍영균(Young-Kyun Hong) 이영섭(Yeong-Seob Lee) 고영훈(Young-Hun Go) 양승표(Seung-Pyo Yang) 현근우(Geun-Woo Hyun) 이건호(Geon-Ho Yi) 김재철(Jea-Chul Kim) 김대열(Dae-Yeoal Kim)
간행물 정보
『1. 한국환경보건학회지』제47권 제6호, 548~557쪽, 전체 10쪽
주제분류
공학 > 환경공학
파일형태
PDF
발행일자
2021.12.31
4,000

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1:1 문의
논문 표지

국문 초록

영문 초록

Background: Due to the emergence of new diseases such as COVID-19, an increasing number of people are struggling with stress and depression. Interest is growing in forest-based recreation for physical and mental relief. Objectives: A prediction model equation using meteorological factors and data was developed to predict the quantities of medicinal substances generated in forests (monoterpenes) in real-time. Methods: The concentration of phytoncide and meteorological factors in the forests near Chuncheon in South Korea were measured for nearly two years. Meteorological factors affecting the observation data were acquired through a multiple regression analysis. A model equation was developed by applying a linear regression equation with the main factors. Results: The linear regression analysis revealed a high explanatory power for the coefficients of determination of temperature and humidity in the coniferous forest (R2=0.7028 and R2=0.5859). With a temperature increase of 1°C, the phytoncide concentration increased by 31.7 ng/Sm³. A humidity increase of 1% led to an increase in the coniferous forest by 21.9 ng/Sm³. In the deciduous forest, the coefficients of determination of temperature and humidity had approximately 60% explanatory power (R2=0.6611 and R2=0.5893). A temperature increase of 1°C led to an increase of approximately 9.6 ng/Sm³, and 1% humidity resulted in a change of approximately 6.9 ng/Sm³. A prediction model equation was suggested based on such meteorological factors and related equations that showed a 30% error with statistical verification. Conclusions: Follow-up research is required to reduce the prediction error. In addition, phytoncide data for each region can be acquired by applying actual regional phytoncide data and the prediction technique proposed in this study.

목차

Ⅰ. 서 론
Ⅱ. 조사내용 및 방법
Ⅲ. 결과 및 고찰
Ⅳ. 결 론
감사의 글
Conflict of Interest
References

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APA

이석종(Seog-Jong Lee),김병욱(Byoung-Ug Kim),홍영균(Young-Kyun Hong),이영섭(Yeong-Seob Lee),고영훈(Young-Hun Go),양승표(Seung-Pyo Yang),현근우(Geun-Woo Hyun),이건호(Geon-Ho Yi),김재철(Jea-Chul Kim),김대열(Dae-Yeoal Kim). (2021).피톤치드(모노테르펜) 농도 예측을 위한 회귀분석 기반 모델식. 1. 한국환경보건학회지, 47 (6), 548-557

MLA

이석종(Seog-Jong Lee),김병욱(Byoung-Ug Kim),홍영균(Young-Kyun Hong),이영섭(Yeong-Seob Lee),고영훈(Young-Hun Go),양승표(Seung-Pyo Yang),현근우(Geun-Woo Hyun),이건호(Geon-Ho Yi),김재철(Jea-Chul Kim),김대열(Dae-Yeoal Kim). "피톤치드(모노테르펜) 농도 예측을 위한 회귀분석 기반 모델식." 1. 한국환경보건학회지, 47.6(2021): 548-557

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